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《材料导报》期刊社  2018, Vol. 32 Issue (7): 1037-1056    https://doi.org/10.11896/j.issn.1005-023X.2018.07.001
  材料与可持续发展(一)—— 面向洁净能源的先进材料 |
稳定高效α-Fe2O3光电化学水分解——合理的材料设计和载流子动力学
谢佳乐1, 杨萍萍2, 李长明1,2
1 苏州科技大学材料科学与器件研究院,苏州 215009;
2 西南大学材料与能源学部,重庆 400715
Stable and High-efficient α-Fe2O3 Based Photoelectrochemical Water Splitting: Rational Materials Design and Charge Carrier Dynamics
XIE Jiale1, YANG Pingping2, LI Chang Ming1,2
1 Institute of Materials Science and Devices, Suzhou University of Science and Technology, Suzhou 215009;
2 Faculty of Materials and Energy, Southwest University, Chongqing 400715
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摘要 氢能是非常清洁的能源。发展高效、清洁和低成本的产氢装置是利用氢能的首要关键技术问题。光电化学水分解是首选的制氢技术之一。它可实现室温下直接水分解和氢氧分离,并不完全受限于太阳光的周期性波动;其产氢装置可全部由无机材料制成,有好的化学活性和使用寿命。但是,光电化学水分解技术的效率目前还无法满足实际应用的要求,特别是还不能实现长期稳定运行,存在一定的性能衰减。
在各种光电极材料中,α-Fe2O3是非常重要且具有潜力的稳定高效的光阳极材料,已成为近年来研究的热点。α-Fe2O3又称赤铁矿,储量丰富,在光电化学水分解中具有良好的稳定性、低成本和良好的太阳光谱响应等优势,已成为最具应用前景的光电极材料。然而,α-Fe2O3固有的一些问题诸如电荷传输差、表面复合严重、电荷转移动力学缓慢等限制了其实际应用。近年来,研究者们已发展了多种多样的策略和途径,例如掺杂、纳米化、异质结和表面处理等来解决上述问题。多种金属和非金属元素如Ti、Sn、Si、S等掺杂的α-Fe2O3表明,异质原子的引入会降低电子的有效质量,进而提高导电性,还会影响α-Fe2O3的晶体扭曲和活性位点等性质。从零维、一维、二维、三维到层级结构的α-Fe2O3都已经成功合成;同时,纳米化也拓展到导电基底的规则阵列图案化,α-Fe2O3纳米化能够促进光生空穴产生和利用,已成为α-Fe2O3光电化学水分解性能提升的重要途径。研发的n-n型和p-n型α-Fe2O3异质结如α-Fe2O3/ZnFe2O4、p-Si/α-Fe2O3等已较大地提高了其光电催化水分解性能,其中异质结很大程度上促进了α-Fe2O3光吸收、光生电荷分离和电极过程动力学。α-Fe2O3表面处理如催化剂修饰、钝化层修饰、化学/电化学刻蚀、气氛处理等,则显著改善了α-Fe2O3电极的电荷转移、析氧动力学,并抑制了电荷复合。
本文主要从材料设计和载流子动力学这两个角度,综述了不同策略和途径对α-Fe2O3光电化学水分解性能的影响,分析了纳米结构以及材料复合等处理方式对α-Fe2O3光电极性能影响的构效关系,并进一步深入分析了光电化学水分解反应中载流子的动力学过程,建立了α-Fe2O3光电极性能提升和光生载流子之间清晰的物理图像。此外,本文还介绍了光电化学水分解的基本原理和物理过程。该综述可为今后合理设计制备基于α-Fe2O3的稳定高效光电极提供有益的理论指导与实验设计方法。
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谢佳乐
杨萍萍
李长明
关键词:  赤铁矿  光电化学水分解  材料设计  载流子动力学    
Abstract: Hydrogen energy is a totally clean energy. The primary scientific and technical issue of the utilization of hydrogen energy is the development of efficient, clean, sustainable and low-cost hydrogen production technologies. Photoelectrochemical (PEC) water splitting is a preferred technology, which can directly achieve water splitting and hydrogen/oxygen separation at room temperature. PEC devices are not seriously limited by the cyclical fluctuations of sunlight, and can be made entirely of inorganic materials. Thus, PEC devices usually present high chemical activity and long lifetime. However, the efficiency of PEC devices is still not able to meet the requirements for practical applications. Moreover, the performance of PEC devices would decay with time and cannot provide long stable operations up to date.
Among various photoelectrode materials, hematite (α-Fe2O3) is an important and promising one with excellent stability, low cost, abundant reserve, excellent solar spectrum response and high efficiency, and has become a research hotspot in recent years. However, its drawbacks of poor charge transport, high charge recombination and sluggish kinetics greatly limit its practical applications. In recent years, various approaches including doping, nanostructuring, heterojunction and surface modification/treatment have been reported. The doping of α-Fe2O3 with a variety of metallic and nonmetallic elements such as Ti, Sn, Si and S shows that the incorporated heteroatoms could reduce the effective electron mass, thereby increasing the conductivity, while inducing the crystal distortion of α-Fe2O3 for creating more active sites. The α-Fe2O3 nanomaterials with 0D, 1D, 2D, 3D and hierarchical structures have been successfully synthesized. Furthermore, nanostructuring arts are developed to fabricate highly conductive substrate with regular array patterns. The nanostructured α-Fe2O3 can enhance the generation and utilization of holes, which is an important way to improve the PEC performance. Various α-Fe2O3-based n-n and p-n heterojunctions such as α-Fe2O3/ZnFe2O4 and p-Si/α-Fe2O3 have also been developed. These heterojunctions greatly promote the light absorption, charge separation and kinetics of α-Fe2O3 photoanodes. The surface treatment of α-Fe2O3, such as catalyst modification, passivation layer modification, chemical/electrochemical etching and atmosphere treatment, could significantly improve its charge transfer, oxygen evolution kinetics and inhibit its charge recombination.
Herein, we provide an overview mainly focusing on four approaches mentioned above, in particular the rational designs of materials and corresponding charge carrier dynamics. The effects of the different approaches on the α-Fe2O3 based photoelectrochemical water splitting are discussed. The structure-activity relationship including nanostructure and materials composition is analyzed. Further, we thoughtfully analyze the charge carrier dynamics during the processes of photoelectrochemical water splitting. We offer clear physical insights to show the relation of the performance improvement of α-Fe2O3 versus the charge carriers. Moreover, a brief introduction of the basic principles and processes of photoelectrochemical water splitting is presented. It is expected that this article could offer theoretical guidance and practical methods for rational designs of α-Fe2O3 for stable and high-efficient solar hydrogen conversion.
Key words:  hematite    photoelectrochemical water splitting    materials design    charge carrier dynamics
               出版日期:  2018-04-10      发布日期:  2018-05-11
ZTFLH:  O649  
基金资助: 国家自然科学基金(21703150);国家重点基础研究发展计划(973计划,2011CB911002)
通讯作者:  李长明:通信作者,男,1947年生,教授,博士研究生导师,主要从事洁净能源先进材料的研究 E-mail:ecmli@swu.edu.cn   
作者简介:  谢佳乐:男,1987年生,博士,副教授,主要从事太阳能水分解和电化学能量存储方面的研究 E-mail:jialexie@usts.edu.cn 杨萍萍:共同第一作者,女,1989年生,博士研究生,主要从事新型纳米材料的合成及其在商用超级电容器中的应用研究 E-mail:ypp2331@163.com
引用本文:    
谢佳乐, 杨萍萍, 李长明. 稳定高效α-Fe2O3光电化学水分解——合理的材料设计和载流子动力学[J]. 《材料导报》期刊社, 2018, 32(7): 1037-1056.
XIE Jiale, YANG Pingping, LI Chang Ming. Stable and High-efficient α-Fe2O3 Based Photoelectrochemical Water Splitting: Rational Materials Design and Charge Carrier Dynamics. Materials Reports, 2018, 32(7): 1037-1056.
链接本文:  
http://www.mater-rep.com/CN/10.11896/j.issn.1005-023X.2018.07.001  或          http://www.mater-rep.com/CN/Y2018/V32/I7/1037
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